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Updated: Aug 1, 2026

Static Adhesion Assay for the Study of Integrin Activation in T Lymphocytes
Published on: June 13, 2014
Dual role of the actin cytoskeleton in regulating cell adhesion mediated by the integrin lymphocyte
M Lub1, Y van Kooyk, S J van Vliet
1Department of Tumor Immunology, University Hospital Nijmegen St. Radboud, The Netherlands.
Insights
The cytoskeleton
Area of Science:
- Immunology
- Cell Biology
- Biochemistry
Background:
- Leukocyte adhesion is crucial for immune responses.
- Lymphocyte function-associated molecule-1 (LFA-1) mediates cell adhesion.
- LFA-1 activation requires intracellular signals.
Purpose of the Study:
- Investigate the cytoskeleton's role in LFA-1 activation.
- Determine how F-actin influences LFA-1-mediated adhesion.
- Elucidate the mechanisms of LFA-1 clustering and binding.
Main Methods:
- Studied activated and resting lymphocytes.
- Manipulated the actin cytoskeleton.
- Observed LFA-1 distribution and ICAM-1 binding.
- Investigated signaling pathways.
Main Results:
- F-actin can enhance or inhibit LFA-1 adhesion based on LFA-1 distribution.
- Disrupting the actin cytoskeleton enhances LFA-1 binding in resting lymphocytes.
- LFA-1 uncoupling from actin induces clustering and high-affinity binding.
- Adhesion depends on intermediate filaments, microtubules, and energy.
Conclusions:
- Cytoskeletal linkage of LFA-1 can inhibit its activation.
- Release from the cytoskeleton allows LFA-1 clustering and binding.
- Inside-out signaling induces LFA-1 activation and outside-in signaling stabilizes adhesion.
Abstract:
Intracellular signals are required to activate the leukocyte-specific adhesion receptor lymphocyte function-associated molecule-1 (LFA-1; CD11a/CD18) to bind its ligand, intracellular adhesion molecule-1 (ICAM-1). In this study, we investigated the role of the cytoskeleton in LFA-1 activation and demonstrate that filamentous actin (F-actin) can both enhance and inhibit LFA-1-mediated adhesion, depending on the distribution of LFA-1 on the cell surface. We observed that LFA-1 is already clustered on the cell surface of interleukin-2/phytohemagglutinin-activated lymphocytes. These cells bind strongly ICAM-1 and disruption of the actin cytoskeleton inhibits adhesion. In contrast to interleukin-2/phytohemagglutinin-activated peripheral blood lymphocytes, resting lymphocytes, which display a homogenous cell surface distribution of LFA-1, respond poorly to intracellular signals to bind ICAM-1, unless the actin cytoskeleton is disrupted. On resting peripheral blood lymphocytes, uncoupling of LFA-1 from the actin cytoskeleton induces clustering of LFA-1 and this, along with induction of a high-affinity form of LFA-1, via "inside-out" signaling, results in enhanced binding to ICAM-1, which is dependent on intact intermediate filaments, microtubules, and metabolic energy. We hypothesize that linkage of LFA-1 to cytoskeletal elements prevents movement of LFA-1 over the cell surface, thus inhibiting clustering and strong ligand binding. Release from these cytoskeletal elements allows lateral movement and activation of LFA-1, resulting in ligand binding and "outside-in" signaling, that subsequently stimulates actin polymerization and stabilizes cell adhesion.
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